Automated Multiplexed Potentiostat System (AMPS) for High-Throughput Characterization of Neural Interfaces.

Travis L Massey, Jeremy R Gleick, Razi-Ul M Haque
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Abstract

Neural interfaces with increasing channel counts require a scalable means of testing. While multiplexed potentiostats have long been the solution to this problem, most have been dedicated to one specific probe design or potentiostat, limited in the electrochemical techniques available, inordinately expensive, or they support multiplexing of too few channels. We present the design of an automated multiplexed potentiostat system that addresses these limitations-it is easily generalizable to any probe and potentiostat, supports any electrochemical technique available with the potentiostat, is low-cost, and can readily be expanded to hundreds of channels with support for multiple simultaneous potentiostats. This paper discusses the design philosophy and architecture of our 512-channel, 4-potentiostat system before demonstrating functionality with electrochemical impedance spectroscopy data, cyclic voltammetry curves, and an example of electrochemical surface modification, all on functional implantable microelectrode arrays currently being used for in vivo electrophysiological studies. Finally, we discuss the limitations to some sensitive or high-frequency impedance measurements due to reactive parasitics.

Abstract Image

Abstract Image

用于神经接口高通量表征的自动多重恒电位仪系统 (AMPS)。
通道数量不断增加的神经接口需要一种可扩展的测试手段。长期以来,多路复用恒电位仪一直是解决这一问题的方法,但大多数恒电位仪只适用于一种特定的探针设计或恒电位仪,可用的电化学技术有限,价格昂贵,或者支持的多路复用通道太少。我们介绍了一种自动多路复用恒电位仪系统的设计,该系统解决了这些局限性--它可轻松通用于任何探针和恒电位仪,支持恒电位仪可用的任何电化学技术,成本低廉,并可随时扩展至数百个通道,支持多个恒电位仪同时工作。本文讨论了我们的 512 通道 4 电位仪系统的设计理念和结构,然后用电化学阻抗谱数据、循环伏安曲线和电化学表面改性实例演示了该系统的功能,所有这些都是在目前用于体内电生理研究的功能性植入式微电极阵列上进行的。最后,我们讨论了反应性寄生效应对某些敏感或高频阻抗测量的限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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